Selective laser melting of aluminium components

被引:715
作者
Louvis, Eleftherios [1 ]
Fox, Peter [1 ]
Sutcliffe, Christopher J. [1 ]
机构
[1] Univ Liverpool, Dept Engn, Liverpool L69 3GH, Merseyside, England
基金
英国工程与自然科学研究理事会;
关键词
SLM; Aluminium alloys; Oxidation; WELD SHAPE VARIATIONS; IN-GROWTH CONSTRUCTS; UNIT-CELL APPROACH; MARANGONI CONVECTION; METALLIC POWDERS; LIQUID ALUMINUM; MANUFACTURE; TITANIUM;
D O I
10.1016/j.jmatprotec.2010.09.019
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Previous work has shown that the processing of aluminium alloys by selective laser melting (SLM) is difficult, with reasonable components only being produced with high laser powers (minimum 150W) and slow laser scanning speeds. The high laser power is a significant problem a:3 it is higher than that used in many SLM machines. Also, the combination of high power and low speed creates a large melt pool that is difficult to control, leading to balling of the melt and possible damage to the powder distribution system. Even when processing is carried out successfully, the high power and slow scan speed significantly increase build time and the manufacturing costs. This paper considers the changes that can be made to the SLM process so as to reduce the laser power required and increase the laser scanning rates, while still producing components with a high relative density. It also considers why aluminium and its alloys are much more difficult to process than stainless steels and commercially pure titanium. Two MCP Realizer machines were used to process 6061 and AlSi12 alloys, one processing at SOW and the other 100W laser power. Even with an optimum combination of process parameters a maximum relative density of only 89.5% was possible (achieved with 100W). The major confounding factor for processing aluminium and its alloys was found to be oxidation due to the presence of oxygen within the build chamber. This formed thin oxide films on both the solid and molten materials. It was observed that the oxide on the top of the melt pool vaporised under the laser creating a fume of oxide particles, while melt pool stirring, probably due to Marangoni forces, tended to break the oxide at the base of the melt pool allowing fusion to the underlying tracks. However, the oxides at the sides of the melt pool remained intact creating regions of weakness and porosity, as the melt pool failed to wet the surrounding material. Therefore, if 100% dense aluminium components are to be produced by SLM, using low laser powers, methods need to be developed that can either disrupt these oxide films or avoid their formation. (C) 2010 Elsevier B.V. All rights reserved.
引用
收藏
页码:275 / 284
页数:10
相关论文
共 24 条
  • [1] The manufacturing of hard tools from metallic powders by selective laser melting
    Abe, F
    Osakada, K
    Shiomi, M
    Uematsu, K
    Matsumoto, M
    [J]. JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2001, 111 (1-3) : 210 - 213
  • [2] Bergman TheodoreL., 2007, Introduction to Heat Transfer, V6Th
  • [3] BUCHBINDER D, 2008, P 11 INT C AL ALL AA, P2394
  • [4] Campbell J., 2003, CASTINGS, V2nd
  • [5] Mapping and modelling single scan track formation in direct metal selective laser melting
    Childs, THC
    Hauser, C
    Badrossamay, M
    [J]. CIRP ANNALS-MANUFACTURING TECHNOLOGY, 2004, 53 (01) : 191 - 194
  • [6] CHILDS THC, 2005, P I MECH ENG B, V379
  • [7] A model for the interaction of near-infrared laser pulses with metal powders in selective laser sintering
    Fischer, P
    Karapatis, N
    Romano, V
    Glardon, R
    Weber, HP
    [J]. APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 2002, 74 (04): : 467 - 474
  • [8] Gaskell D. R., 2017, Introduction to the Thermodynamics of Materials
  • [9] GILL MDH, 2006, THESIS U LIVERPOOL
  • [10] Modelling of radiation transfer in metallic powders at laser treatment
    Gusarov, AV
    Kruth, JP
    [J]. INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2005, 48 (16) : 3423 - 3434